A dielectric block includes a plurality of plated through holes each having an inner conductor formed thereon to form respective plated through holes. At least one of the plated through holes branches into two legs at the short circuit side thereof so that the two legs are close to the short circuit side of the plated through holes adjacent thereto. This allows the resonators formed of the plated through holes to be strongly inductively coupled with each other.
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1. A dielectric filter comprising:
a dielectric block having first and second opposed surfaces; an outer conductor formed on exterior surfaces of said dielectric block; a plurality of through holes extending from the first to the second surface of the dielectric block; a respective inner conductor formed on each of the through holes to form respective plated through holes, each inner conductor having a short circuit end directly coupled to the outer conductor and an open circuit end capacitively coupled to the outer conductor; and at least one of the plated through holes branching into a plurality of legs, each of the plurality of legs having a short circuit end directly coupled to the outer conductor.
5. A dielectric filter comprising:
a dielectric block having first and second opposed surfaces; an outer conductor formed on exterior surfaces of said dielectric block; a plurality of through holes extending from the first to the second surface of the dielectric block; a respective inner conductor formed on each of the through holes to form respective plated through holes each inner conductor having a short circuit end directly coupled to the outer conductor and an open circuit end capacitively coupled to the outer conductor; and at least one of the plated through holes branching into a plurality of legs, each of the plurality of legs having a short circuit end directly coupled to the outer conductor, wherein at least one of the plurality of legs has an inner diameter which is different than that of the other legs.
4. A dielectric filter, comprising:
a dielectric block having first and second opposed surfaces; an outer conductor formed on exterior surfaces of said dielectric block; a plurality of through holes extending from the first to the second surface of the dielectric block; a respective inner conductor formed on each of the through holes to form respective plated through holes, each inner conductor having a short circuit end directly coupled to the outer conductor and an open circuit end capacitively coupled to the outer conductor; and at least one of the plated through holes branching into a plurality of legs, each of the plurality of legs having a short circuit end directly coupled to the outer conductor, wherein a branching position of the plurality of legs is substantially at the center of the plated through holes in a longitudinal direction thereof.
2. A dielectric duplexer comprising a transmission filter and a reception filter, each filter comprising the dielectric filter according to
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1. Field of the Invention
The present invention relates to a dielectric filter, a dielectric duplexer, and a communication apparatus using the same for use, preferably in the microwave band.
2. Description of the Related Art
A known dielectric filter comprises a plurality of dielectric resonators found in a single dielectric block. Each resonator is defined by a through hole extending through the dielectric block and has an inner electrode formed thereon forming a plated through hole. Each plated through hole has an open circuit end and a closed circuit end. Adjacent resonators are capacitively or inductively coupled to one another. Such filters are typically used in microwave-band communication apparatus, etc. In this type of dielectric filter, an attenuation pole is produced at a low-frequency region of the pass band when adjacent resonators are capacitively coupled with each other, and an attenuation pole is produced at a high-frequency region of the pass band when adjacent resonators are inductively coupled with each other.
One such prior art resonator is disclosed in Japanese Unexamined Patent Application Publication No. 7-254806. In this resonator each plated through hole has a stepped portion in the middle thereof to make the axial spacing between adjacent plated through holes at the short circuit side of the plated through different from that at the open side circuit thereof to provide inductive or capacitive coupling therebetween.
In
In a dielectric filter having three resonators, as shown in
For these reasons, the first and second resonators are inductively coupled with each other, and the second and third resonators are also inductively coupled with each other, which limits the amount of coupling.
Accordingly, it is an object of the present invention to provide a dielectric filter, a dielectric duplexer, and a communication apparatus using the same, which are capable of providing strong inductive coupling among three adjacent dielectric resonators in a dielectric block.
To this end, in one aspect of the present invention, a dielectric filter includes:
A dielectric filter comprising:
a dielectric block having first and second opposed surfaces;
an outer conductor formed on exterior surfaces of said dielectric block;
is a plurality of plated through holes extending from the first to the second surface of the dielectric block;
a respective inner conductor formed on each of the plated through holes, each conductor having a short circuit end directly coupled to the outer conductor and an open circuit end capacitively coupled to the outer conductor; and
at least one of the plated through holes branching into a plurality of legs each having a short circuit end directly coupled to the outer conductor.
With this structure, for example, the axial spacing between the central plated through hole and plated through holes adjacent thereto may be narrowed at the short circuit side. This makes it possible to strongly inductively couple the first and second resonators on the one hand and the second and third resonators on the other, thereby readily achieving a bandpass characteristic of a broad band.
The location at which the plated through hole branches into a plurality of legs is preferably positioned substantially at the center of the plated through holes in the longitudinal direction thereof. This makes it possible to place the inner conductors on adjacent plated through holes close to each other at a high-magnetic-field-strength region, resulting in the maximum amount of coupling between adjacent resonators to achieve a high versatility in design. Furthermore, each plated through hole has a larger cross-section at the open circuit side than at the short circuit side, that is, each has a stepped structure, thereby improving the effect of reducing the axial length of plated through holes.
In another aspect of the present invention, a dielectric duplexer includes a transmission filter and a reception filter, each filter comprising the above-described dielectric filter. The dielectric duplexer allows adjacent resonators to be strongly inductively coupled with each other in a sequential manner, thus achieving a predetermined filter characteristic with a compact chassis.
In another aspect of the present invention, a communication apparatus includes the above-described dielectric filter. Therefore, a compact communication apparatus having a superior communication performance is achieved.
The plated through hole 2b is elliptical in cross-section at the open circuit side adjacent top surface 1b so that the elliptic shape of the plated through hole 2b extends toward the plated through holes 2a and 2c adjacent thereto. The plated through hole 2b branches into two legs 2b' and 2b" at the short circuit side adjacent to the bottom surface 1a. The legs 2b' and 2b" are positioned close to the short circuit side of the plated through holes 2a and 2c, respectively.
The plated through holes 2a and 2c have a greater inner diameter at the open circuit side than at the short circuit side. The short circuit side of the plated through holes 2a and 2c is positioned close to the short circuit side of the legs 2b' and 2b" of the plated through hole 2b.
Accordingly, the spacing between the legs 2b' and 2b" of the plated through hole 2b and the plated through holes 2a and 2c is relatively narrower at the short circuit side than at the open circuit side, thereby making inductive coupling at areas Sab and Sbc stronger than capacitive coupling at areas Oab and Obc. This provides strong inductive coupling between the first and second resonators on the one hand and between the second and third resonators on the other.
The position at which the plated through hole 2b branches into the two legs 2b' and 2b" is arbitrary. However, it is preferably, substantially at the center in the longitudinal direction of the plated through hole 2b.
This structure allows inner conductors formed on the adjacent plated through holes to be close to each other at a high-magnetic-field-strength region, resulting in the maximum amount of coupling between adjacent resonators formed of the plated through holes. This also makes it possible to achieve a higher versatility in design. Furthermore, each plated through hole has a larger cross-section at the open circuit side than at the short circuit side, that is, has a stepped structure, thereby improving the effect of reducing the axial length of plated through holes.
A second embodiment of the invention is shown in
This structure also relatively increases the inductive coupling between the first and second resonators on the one hand, and between the second and third resonators on the other, compared to capacitive coupling therebetween, so that the first and second resonators can be strongly inductively coupled with the second and third resonators, respectively.
A third embodiment of the present invention as shown in
A fifth embodiment of the present invention is shown in
In the first embodiment, the plated through holes 2a and 2c has a larger inner diameter at the open circuit side than at the short circuit side, and are positioned closer to the short circuit side of the legs 2b' and 2b" of the plated through hole 2b. In contrast in the dielectric filter of this fourth embodiment, the plated through holes 2a and 2c have the same inner diameter at the open circuit side as that at the short circuit side. This structure provides strong inductive coupling between the first resonator defined by the inner conductor 4a and the second resonator defined by the inner conductor 2b, and further provides strong inductive coupling between the second and the third resonators.
A sixth embodiment of the present invention is shown in FIG. 6. The dielectric filter according to the first embodiment shown in
A dielectric duplexer according to a tenth embodiment of the present invention is now described with reference to
The plated through hole 2b is elliptical in cross section at the open circuit side adjacent to top surface 1b so that the elliptic shape of the plated through hole 2b extends toward the plated through holes 2a and 2c adjacent thereto. The plated through hole 2b branches into two legs 2b' and 2c' at the short circuit side. The legs 2b' and 2b" are positioned close to the short circuit side of the plated through holes 2a and 2c adjacent thereto, respectively.
The plated through holes 2a and 2c have a larger inner diameter at the open circuit side than at the short circuit side. The plated through holes 2a and 2c at the short circuit side are positioned close to the short circuit side of the legs 2b' and 2b" of the plated through hole 2b.
Accordingly, the axial spacing between the legs 2b' and 2b" of the plated through hole 2b and the plated through holes 2a and 2c adjacent thereto is relatively closer at the short circuit side than at the open circuit side, thereby providing strong inductive coupling between the first and second resonators on the one hand, and between the second and third resonators on the other.
With this structure, the three resonators formed of the plated through holes 2a to 2c form a transmission filter, and the three resonators formed of the plated through holes 2d to 2f form a reception filter. The three resonators formed of the plated through holes 2a to 2c provides inductive coupling between the first and second resonators, and between the second and third resonators, as described above, thereby producing an attenuation pole at a high-frequency region of the transmission filter. In the three resonators formed of the plated through holes 2d to 2f, the axial spacing between the adjacent plated through holes at the open circuit side is relatively narrower than at the short circuit side to provide capacitive coupling therebetween, thereby producing an attenuation pole at a low-frequency region of the reception filter. These attenuation poles ensure a significant amount of attenuation at the boundary of the transmission band and the reception band.
According to the present invention, therefore, a communication apparatus using a compact dielectric filter or dielectric duplexer having a predetermined characteristic can be compact and lightweight.
Although the present invention has been described in relation to particular embodiments thereof, many other variations and modifications and other uses will become apparent to those skilled in the art. It is preferred, therefore, that the present invention be limited not by the specific disclosure herein, but only by the appended claims.
Kato, Hideyuki, Kuroda, Katsuhito, Ishihara, Jinsei
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